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Uptake distribution clearance and toxicity of iron oxide nanoparticles with different sizes and coatings

机译:不同尺寸和涂层的氧化铁纳米颗粒的吸收分布清除和毒性

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摘要

Iron oxide nanoparticles (IONPs) have been increasingly used in biomedical applications, but the comprehensive understanding of their interactions with biological systems is relatively limited. In this study, we systematically investigated the in vitro cell uptake, cytotoxicity, in vivo distribution, clearance and toxicity of commercially available and well-characterized IONPs with different sizes and coatings. Polyethylenimine (PEI)-coated IONPs exhibited significantly higher uptake than PEGylated ones in both macrophages and cancer cells, and caused severe cytotoxicity through multiple mechanisms such as ROS production and apoptosis. 10 nm PEGylated IONPs showed higher cellular uptake than 30 nm ones, and were slightly cytotoxic only at high concentrations. Interestingly, PEGylated IONPs but not PEI-coated IONPs were able to induce autophagy, which may play a protective role against the cytotoxicity of IONPs. Biodistribution studies demonstrated that all the IONPs tended to distribute in the liver and spleen, and the biodegradation and clearance of PEGylated IONPs in these tissues were relatively slow (>2 weeks). Among them, 10 nm PEGylated IONPs achieved the highest tumor uptake. No obvious toxicity was found for PEGylated IONPs in BALB/c mice, whereas PEI-coated IONPs exhibited dose-dependent lethal toxicity. Therefore, it is crucial to consider the size and coating properties of IONPs in their applications.
机译:氧化铁纳米粒子(IONPs)已越来越多地用于生物医学应用中,但是对它们与生物系统相互作用的全面理解相对有限。在这项研究中,我们系统地研究了具有不同尺寸和涂层的市售和特性良好的IONP的体外细胞吸收,细胞毒性,体内分布,清除率和毒性。在巨噬细胞和癌细胞中,涂有聚乙烯亚胺(PEI)的IONPs的吸收均明显高于PEG化的IONPs,并通过ROS产生和凋亡等多种机制引起严重的细胞毒性。 10 nm PEG化的IONP比30 nm的IONP显示出更高的细胞摄取,并且仅在高浓度时才具有轻微的细胞毒性。有趣的是,聚乙二醇化的IONP而不是PEI包裹的IONP能够诱导自噬,这可能对IONP的细胞毒性起保护作用。生物分布研究表明,所有IONP都倾向于分布在肝脏和脾脏中,这些组织中PEG化IONP的生物降解和清除相对较慢(> 2周)。其中,10μnmPEG化的IONPs达到最高的肿瘤吸收率。在BALB / c小鼠中未发现PEG化IONP的明显毒性,而PEI包覆的IONP表现出剂量依赖性的致死毒性。因此,在应用中考虑IONP的尺寸和涂层性能至关重要。

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